Functional Interrogation of Neuronal Subtypes via Intersectional Expression of Optogenetic Actuator Reveals Non-linear Components in a Linear Circuit
Li, T.; Kumar, S.; Poon, H.; Leifer, A. M.; Zheng, C.
Show abstract
Investigating signal integration in a neural circuit is oftentimes challenging when the circuit contains neuronal subtypes that are transcriptomically similar, due to the lack of tools to express optogenetic actuators with high cellular specificity and to deliver light with high spatiotemporal accuracy. Here, we demonstrate the use of a split GAL4-based genetic "AND" gate to express Chrimson in specific touch receptor neuron (TRN) subtypes in the C. elegans touch response circuit. Combining this intersectional strategy for transgene expression with high-throughput optical targeting and behavioral quantification, we optogenetically interrogated the role of each TRN subtype in mediating the mechanosensor-induced escape response and in integrating signals that trigger the opposite motor output. Surprisingly, we found that although the response of the overall circuit linearly combines the competing anterior and posterior stimuli, this linearity is comprised of antagonistic non-linear contributions from the anterior and posterior sensors, which conspire to generate a linear response.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- The physiological basis for the computation of direction selectivity in the Drosophila OFF pathway 96%
- Hierarchical regulation of functionally antagonistic neuropeptides expressed in a single neuron pair 95%
- A Synaptic Corollary Discharge Signal Suppresses Midbrain Visual Processing During Saccade-Like Locomotion 95%
Similar papers in this journal
- Compressed sensing based approach identifies modular neural circuitry driving learned pathogen avoidance 96%
- Asymmetric retinal direction tuning predicts optokinetic eye movements across stimulus conditions 96%
- Synaptic and intrinsic mechanisms underlying development of cortical direction selectivity 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.